Guo Mingzhuo, Wu Siyang, Zhao Jiale, Zhuang Jian, Wu Qian
College of Biological and Agricultural Engineering, Jilin University, Changchun, China.
Key Laboratory of Bionic Engineering (Ministry of Education), Jilin University, Changchun, China.
Microsc Res Tech. 2023 May;86(5):589-599. doi: 10.1002/jemt.24297. Epub 2023 Jan 30.
In this paper, the microstructure characteristics and mechanical properties (including nano-indentation, tensile, and penetration behaviors) of the scales from pinecone fish (Monocentris japonica) were investigated. The M. japonica scales display a unique hierarchical structure and consist of three layers: an outer bone layer with high mineralization, an intermediate bone layer with obvious pore structures, and an inner collagen layer composed of multiple plies of collagen fibers. The hardness and indentation modulus of the three structural layers exhibit gradient changes, and decrease gradually from the outer layer to the inner layer. Tensile tests show that the tensile response and failure modes of the scales are different under dry and hydrated conditions. The dry scales have higher tensile strength (46.35 MPa) and Young's modulus (0.74 GPa), while the hydrated scales exhibit higher ultimate strain (20.18%) and toughness (4.57 MPa). Penetration tests indicate that the scales have a significantly high resistance to penetration, and increase the penetration force by more than six times compared with the descaled skin. Furthermore, the structure-property relationship of the M. japonica scales was discussed. It is found that the hard outer layer and the porous intermediate layer help to disperse the stress, and the soft inner layer containing collagen fiber plies helps to deflect the crack propagation, which are responsible for the excellent mechanical properties of the scales. The outcome of this study can provide a valuable biomimetic design inspiration for lightweight and high-strength composite materials in engineering fields. RESEARCH HIGHLIGHTS: Microstructure characteristics and mechanical properties of the Monocentris japonica scales were investigated. The M. japonica scales can be divided into three layers rather than two layers. The M. japonica scales exhibited high tensile strength and penetration resistance.
本文研究了松球鱼(日本单角鲀)鳞片的微观结构特征和力学性能(包括纳米压痕、拉伸和穿透行为)。日本单角鲀鳞片呈现出独特的分级结构,由三层组成:外层为高矿化度的骨层,中间层为具有明显孔隙结构的骨层,内层为由多层胶原纤维组成的胶原层。三个结构层的硬度和压痕模量呈现梯度变化,从外层到内层逐渐降低。拉伸试验表明,鳞片在干燥和水合条件下的拉伸响应和失效模式不同。干燥鳞片具有较高的拉伸强度(46.35MPa)和杨氏模量(0.74GPa),而水合鳞片则表现出较高的极限应变(20.18%)和韧性(4.57MPa)。穿透试验表明,鳞片具有显著的高抗穿透性,与去鳞皮肤相比,穿透力增加了六倍以上。此外,还讨论了日本单角鲀鳞片的结构-性能关系。研究发现,坚硬的外层和多孔的中间层有助于分散应力,而含有胶原纤维层的柔软内层有助于使裂纹扩展发生偏转,这是鳞片具有优异力学性能的原因。本研究结果可为工程领域的轻质高强度复合材料提供有价值的仿生设计灵感。研究亮点:研究了日本单角鲀鳞片的微观结构特征和力学性能。日本单角鲀鳞片可分为三层而非两层。日本单角鲀鳞片表现出高拉伸强度和抗穿透性。